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Published on: October 23, 2018
mTOR - Mediated protein synthesis by inhibiting protein catabolism in Chinese perch (Siniperca chuatsi)
Jiao Li1, Yanpeng Zhang1, Xu-Fang Liang1
1College of Fisheries, Chinese Perch Research Center, Huazhong Agricultural University, Wuhan, 430070, China; Key Lab of Freshwater Animal Breeding, Ministry of Agriculture and Rural Affair/ Hubei Engineering Technology Research Center for Fish Breeding and Healthy Aquaculture, Wuhan, 430070, China.
Abstract:
Activation of the mechanistic target of rapamycin (mTOR) pathway is known to promote protein synthesis by enhancing mRNA translation. However, there have been few literatures on the effect of mTOR on protein metabolism in non-mammals. The main source of ammonia in fish comes from protein catabolism. The key step of protein catabolism involves the deamination and/or transamination of amino acids. This study is aimed to explore the mechanism underlying mTOR pathway influencing protein retention from the perspective of protein catabolism. Chinese perch were fasted for 24 h and divided into 4 groups randomly before intracerebroventricular (ICV) injection: (1) control group for leucine; (2) leucine group; (3) control group for leucine and rapamycin; (4) leucine and rapamycin group. Food intake was equivalent between each control and treatment groups at each time point (0.5, 4, 12 and 24 h post-injection). Ammonia-N excretion rate, blood glucose, S6 phosphorylation level, and expression of relative genes of protein catabolism (GDH, AMPD, AST, ALT) were determined. The results indicated that the pS6 level was increased, and that the ammonia-N excretion rate, blood glucose, and mRNA level of protein catabolism genes (GDH and AMPD) were significantly decreased after injection with leucine, while those changes were reversed after injection with leucine and rapamycin. Our study not only reveals the mechanism by which mTOR mediates protein synthesis by inhibiting protein catabolism in Chinese perch, but also provides reference for improving the utilization of feed protein.
Insights
The mechanistic target of rapamycin (mTOR) pathway inhibits protein catabolism in fish, enhancing protein synthesis and retention. This study reveals how mTOR signaling impacts fish protein metabolism by reducing ammonia excretion.
Area of Science:
- Aquaculture
- Fish Physiology
- Molecular Biology
Background:
- The mechanistic target of rapamycin (mTOR) pathway promotes protein synthesis via mRNA translation.
- Limited research exists on mTOR's role in non-mammalian protein metabolism.
- Protein catabolism, a major ammonia source in fish, involves amino acid deamination/transamination.
Purpose of the Study:
- To investigate the mechanism by which the mTOR pathway influences protein retention in Chinese perch.
- To explore the role of mTOR in regulating protein catabolism in fish.
Main Methods:
- Chinese perch were subjected to intracerebroventricular injection of leucine and/or rapamycin after fasting.
- Measurements included ammonia-N excretion, blood glucose, S6 protein phosphorylation, and expression of protein catabolism genes (GDH, AMPD, AST, ALT).
Main Results:
- Leucine injection increased pS6 levels and decreased ammonia-N excretion, blood glucose, and mRNA levels of GDH and AMPD.
- Co-injection with rapamycin reversed these effects, indicating mTOR pathway involvement.
- mTOR activation inhibits key enzymes and processes in protein catabolism.
Conclusions:
- The mTOR pathway mediates protein synthesis in Chinese perch by inhibiting protein catabolism.
- This research provides insights into improving feed protein utilization in aquaculture by modulating mTOR signaling.
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